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Dynamic braking system of a tidal generator

机译:潮汐发电机动态制动系统

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Renewable energy generation has experienced significant cost reductions during the past decades, and it has become more accepted by the global population. In the beginning, wind generation dominated the development and deployment of renewable energy; however, during recent decades, photovoltaic (PV) generation has grown at a very significant pace due to the tremendous decrease in the cost of PV modules. The focus on renewable energy generation has now expanded to include new types with promising future applications, such as river and tidal generation. The input water flow to these types of resources is more predictable than wind or solar generation. The data used in this paper is representative of a typical river or tidal generator. The analysis is based on a generator with a power rating of 40 kW. The tidal generator under consideration is driven by two sets of helical turbines connected to each side of the generator located in between the turbines. The generator is operated in variable speed, and it is controlled to maximize the energy harvested as well as the operation of the turbine generator. The electrical system consists of a three-phase permanent magnet generator connected to a three-phase passive rectifier. The output of the rectifier is connected to a DC-DC converter to match the rectifier output to the DC bus voltage of the DC-AC inverter. The three-phase inverter is connected to the grid, and it is controlled to provide a good interface with the grid. One important aspect of river and tidal generation is the braking mechanism. In a tidal generator, the braking mechanism is important to avoid a runaway condition in case the connection to the grid is lost when there is a fault in the lines. A runaway condition may lead to an overspeed condition and cause extreme stresses on the turbine blade structure and eventual disintegration of the mechanical structure. In this paper, the concept of the dynamic braking system is developed and investigated for normal and abnormal operations. The main objective is to optimize the performance under emergency braking while designing the system to be as simple as possible to avoid overdesigning the power electronics or exceeding the target budget.
机译:在过去的几十年中,可再生能源生成经历了重大成本降低,而全球人口变得更加接受。一开始,风世导地位了可再生能源的开发和部署;然而,在近几十年来,由于光伏模块成本的巨大降低,光伏(PV)生成已经在非常显着的速度下生长。现在,可再生能源生成的重点是扩大到包括具有承诺未来应用的新类型,例如河流和潮汐生成。对这些类型的资源的输入水流比风或太阳能更容易预测。本文中使用的数据代表典型的河流或潮汐发生器。分析基于具有40kW的功率等级的发电机。正在考虑的潮汐发电机由连接到位于涡轮机之间的发电机的每一侧的两组螺旋涡轮机驱动。发电机以可变速度操作,并且控制以最大化收获的能量以及涡轮发电机的操作。电气系统由连接到三相无源整流器的三相永磁发电机组成。整流器的输出连接到DC-DC转换器以将整流器输出匹配到DC-AC逆变器的直流母线电压。三相逆变器连接到电网,控制以提供与电网的良好界面。河流和潮汐生成的一个重要方面是制动机制。在潮汐发电机中,制动机构对于避免在线路中存在故障时丢失与网格的连接丢失的运行情况是重要的。失控条件可能导致超速状态并对涡轮叶片结构产生极端应力,并且最终崩解机械结构。在本文中,开发并研究了动态制动系统的概念,用于正常和异常操作。主要目的是在紧急制动下优化性能,同时设计系统尽可能简单,以避免过度输入电力电子设备或超过目标预算。

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